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(11) | EP 3 244 138 A1 |
(12) | EUROPEAN PATENT APPLICATION |
published in accordance with Art. 153(4) EPC |
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(54) | COOLING DEVICE FOR LIQUEFIED GAS |
(57) A liquefied gas cooling apparatus (1) including: a gas flow path (2) for carrying
a liquefied gas that is liquefied by cooling; and a refrigeration unit (3) including
a refrigerating cycle (10) formed by an evaporator (7) for cooling the liquefied gas
flowing through the gas flow path (2), a compressor (4), a condenser (5), and a throttle
expansion unit (6). The compressor (4) is driven through an electric motor (15) contained
in a sealed housing (11) together with a compressor mechanism (14). |
{Technical Field}
{Background Art}
{Citation List}
{Patent Literature}
{PTL 1} U.S. Patent Application, Publication No. 2009/0090131
{PTL 2}
U.S. Patent Application, Publication No. 2010/0281915 (corresponding to Japanese Unexamined Patent Application, Publication No. 2010-261038)
{PTL 3} U.S. Patent Application, Publication No. 2010/0257895
{PTL 4} U.S. Patent Application, Publication No. 2014/0190205
{PTL 5} U.S. Patent Application, Publication No. 2014/0283550 {Summary of Invention}
{Technical Problem}
{Solution to Problem}
{Advantageous Effects of Invention}
{Brief Description of Drawings}
{Fig. 1} Fig. 1 is a partial configuration diagram of a liquefied gas cooling apparatus according to the first embodiment of the present invention.
{Fig. 2} Fig. 2 is a schematic configuration diagram of a compressor in a refrigeration unit used for the liquefied gas cooling apparatus.
{Fig. 3} Fig. 3 is a partial configuration diagram of a liquefied gas cooling apparatus according to the second embodiment of the present invention.
{Fig. 4} Fig. 4 is a partial configuration diagram of a liquefied gas cooling apparatus according to the third embodiment of the present invention.
{Fig. 5} Fig. 5 is a graph for explaining efficiencies during the operation of a liquefied gas cooling apparatus according to the present invention.
{Description of Embodiments}
{First Embodiment}
{Second Embodiment}
{Third Embodiment}
{Reference Signs List}
a gas flow path for carrying a liquefied gas that is liquefied by cooling; and
a refrigeration unit including a refrigerating cycle formed by an evaporator for cooling the liquefied gas flowing through the gas flow path, a compressor, a condenser, and a throttle expansion unit, the compressor comprising:
a sealed housing;
a compressor mechanism contained in the housing; and
an electric motor contained in the housing together with the compressor mechanism, wherein
the compressor is driven through the electric motor.
Amended claims under Art. 19.1 PCT
a gas flow path for carrying a liquefied gas that is liquefied by cooling; and
a refrigeration unit including a refrigerating cycle formed by an evaporator for cooling the liquefied gas flowing through the gas flow path, a compressor, a condenser, and a throttle expansion unit, the compressor comprising:
a sealed housing;
a compressor mechanism contained in the housing; and
an electric motor contained in the housing together with the compressor mechanism, wherein
the compressor is driven through the electric motor,
the refrigeration unit is modularized into multiple refrigeration modules connected in parallel or series to the gas flow path to achieve needed cooling performance,
the number of refrigeration modules to operate is controlled according to needed cooling performance dependent on variations in the flow rate of the liquefied gas and in the temperature of the liquefied gas flowing in,
the performances of the refrigeration modules are adjustable by the respective inverters, a comparison is performed between an efficiency produced by adjusting the performance by controlling the number of modules to operate, and an efficiency produced by adjusting the performance by controlling the rotation speed of the compressor, and adjustment is performed by one of these with higher efficiency, and
to select control of the number of refrigeration modules to operate or control of the rotation speed of the compressor, maintenance cost per operation time of the compressor calculated by dividing the cost of regular maintenance of the compressor by maintenance interval is added to electric power cost, and comparison and determination are then made.
a gas flow path for carrying a liquefied gas that is liquefied by cooling; and
a refrigeration unit including a refrigerating cycle formed by an evaporator for cooling the liquefied gas flowing through the gas flow path, a compressor, a condenser, and a throttle expansion unit, the compressor comprising:
a sealed housing;
a compressor mechanism contained in the housing; and
an electric motor contained in the housing together with the compressor mechanism, wherein
the compressor is driven through the electric motor,
the refrigeration unit is modularized into multiple refrigeration modules connected in parallel or series to the gas flow path to achieve needed cooling performance,
the number of refrigeration modules to operate is controlled according to needed cooling performance dependent on variations in the flow rate of the liquefied gas and in the temperature of the liquefied gas flowing in,
the performances of the refrigeration modules are adjustable by the respective inverters, a comparison is performed between an efficiency produced by adjusting the performance by controlling the number of modules to operate, and an efficiency produced by adjusting the performance by controlling the rotation speed of the compressor, and adjustment is performed by one of these with higher efficiency, and
the refrigeration modules except the modules during maintenance are subjected to optimization operation, and the number of modules to operate and which modules are to operate are determined such that a maximum number of modules that can be subjected to maintenance are concurrently subjected to maintenance, the maximum number being determined by resources of performance margin and maintenance personnel.
a gas flow path for carrying a liquefied gas that is liquefied by cooling; and
a refrigeration unit including a refrigerating cycle formed by an evaporator for cooling the liquefied gas flowing through the gas flow path, a compressor, a condenser, and a throttle expansion unit, the compressor comprising:
a sealed housing;
a compressor mechanism contained in the housing; and
an electric motor contained in the housing together with the compressor mechanism, wherein
the compressor is driven through the electric motor,
the compressor is modularized into multiple compressor modules connected in parallel to the refrigerating cycle to achieve needed cooling performance,
the number of compressor modules to operate is controlled according to needed cooling performance dependent on variations in the flow rate of the liquefied gas and in the temperature of the liquefied gas flowing in,
the performances of the compressor modules are adjustable by the respective inverters, a comparison is performed between an efficiency produced by adjusting the performance by controlling the number of modules to operate, and an efficiency produced by adjusting the performance by controlling the rotation speed of the compressor, and adjustment is performed by one of these with higher efficiency, and
to select control of the number of compressor modules to operate or control of the rotation speed of the compressor, maintenance cost per operation time of the compressor calculated by dividing the cost of regular maintenance of the compressor by maintenance interval is added to electric power cost, and comparison and determination are then made.
a gas flow path for carrying a liquefied gas that is liquefied by cooling; and
a refrigeration unit including a refrigerating cycle formed by an evaporator for cooling the liquefied gas flowing through the gas flow path, a compressor, a condenser, and a throttle expansion unit, the compressor comprising:
a sealed housing;
a compressor mechanism contained in the housing; and
an electric motor contained in the housing together with the compressor mechanism, wherein
the compressor is driven through the electric motor,
the compressor is modularized into multiple compressor modules connected in parallel to the refrigerating cycle to achieve needed cooling performance,
the number of compressor modules to operate is controlled according to needed cooling performance dependent on variations in the flow rate of the liquefied gas and in the temperature of the liquefied gas flowing in,
the performances of the compressor modules are adjustable by the respective inverters, a comparison is performed between an efficiency produced by adjusting the performance by controlling the number of modules to operate, and an efficiency produced by adjusting the performance by controlling the rotation speed of the compressor, and adjustment is performed by one of these with higher efficiency, and
the compressor modules except the modules during maintenance are subjected to optimization operation, and the number of modules to operate and which modules are to operate are determined such that a maximum number of modules that can be subjected to maintenance are concurrently subjected to maintenance, the maximum number being determined by resources of performance margin and maintenance personnel.
a gas flow path for carrying a liquefied gas that is liquefied by cooling; and
a refrigeration unit including a refrigerating cycle formed by an evaporator for cooling the liquefied gas flowing through the gas flow path, a compressor, a condenser, and a throttle expansion unit, the compressor comprising:
a sealed housing;
a compressor mechanism contained in the housing; and
an electric motor contained in the housing together with the compressor mechanism, wherein
the compressor is driven through the electric motor,
the electric motor of the compressor is provided with a relay to a power feeding circuit therefor, and
the relay is turned on/off according to the opening/closing of open/close valves for maintenance provided on inlet and outlet sides of the compressor.
REFERENCES CITED IN THE DESCRIPTION
Patent documents cited in the description